Reducing Cost of BOE and Extending Field Life with Intelligently Controlled Multilaterals

G. Mark, Grossmann Andreas
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引用次数: 1

Abstract

While many factors in the reservoir cannot be controlled, there are three controllable factors in field development that make a significant impact. More reservoir contact leads to more oil produced. Controlling sand and water means lower treatment costs, and in-situ reservoir management leads to higher cumulative production. While the underlying technologies have been around for up to 20 years, it is only recently that their synergies and true value are understood. This paper will demonstrate the effect each of these technologies has on increasing overall production rates, improving recovery, and reducing the cost per Barrel of Oil Equivalent (BOE). The successful implementation of multilaterals in the North Sea will be analyzed. Since 1996, over 300 multilateral junctions have been installed on the Norwegian continental shelf fields with currently approximately 30 junctions completed each year. Additionally, simulations will be used to demonstrate the incremental improvements in oil recovery that can be obtained by using properly designed advanced completions that include multilaterals, sensors, and passive/active flow control equipment. The paper will evaluate production performance of a vertical well field development base case against scenarios using horizontal and multilateral wells. It will show how fields can be optimized, leading to increased oil and decreased water production. Production rates can be significantly improved by combining multilaterals with other advanced completion techniques, such as intelligent completions and inflow control devices. The subject field simulation can be further optimized to manage gas and water production. With a tailored multilateral field design, combined with properly designed advanced completions systems, the simulation succeeds in terms of achieving maximum contact with the oil reservoir and meeting improved ultimate recovery objectives. It can be concluded that as reservoir contact is increased, a reduced decline in production rate is observed leading to both a higher Estimated Ultimate Recovery (EUR) and optimized drawdown profile distributions. Additionally, results will be presented that have considered oil production and a method to lower production of unwanted fluids or gas. This paper also demonstrates the value of field development design from the perspective of reservoir simulation. It is through reservoir insight that a level of understanding is created that can help define the optimum well and completion design to meet field expectations. Advanced multilaterals continue to grow in popularity with many operators, and it therefore becomes important to evaluate the value of different field development methods. This knowledge can aid operators in unlocking new reservoir targets and optimizing field development, and ultimately will improve recovery factors and overall field economics.
智能控制多边井降低BOE成本,延长油田寿命
虽然储层中的许多因素无法控制,但在油田开发中有三个可控因素对其产生重大影响。油藏接触越多,产油量就越大。控制砂和水意味着降低处理成本,而原位油藏管理可以提高累积产量。虽然基础技术已经存在了长达20年,但直到最近,人们才了解它们的协同效应和真正价值。本文将展示每种技术在提高总体产量、提高采收率和降低每桶油当量(BOE)成本方面的作用。本文将分析在北海成功实施多边项目的情况。自1996年以来,在挪威大陆架油田安装了300多个多边连接点,目前每年大约完成30个连接点。此外,模拟将用于证明通过使用适当设计的先进完井(包括多边、传感器和被动/主动流量控制设备)可以逐步提高采收率。本文将根据水平井和分支井的开发情况,对直井开发基本案例的生产性能进行评估。它将展示如何对油田进行优化,从而提高产油量,减少产水量。通过将多边井与其他先进完井技术(如智能完井和流入控制装置)相结合,可以显著提高产量。主题现场模拟可以进一步优化,以管理气和水的生产。通过量身定制的多边油田设计,结合设计合理的先进完井系统,模拟成功地实现了与油藏的最大接触,并达到了提高的最终采收率目标。可以得出结论,随着储层接触的增加,可以观察到产量下降的减少,从而获得更高的估计最终采收率(EUR)和优化的压降剖面分布。此外,研究结果还将考虑到石油产量以及降低不需要的流体或气体产量的方法。从油藏模拟的角度论证了油田开发设计的价值。通过对储层的深入了解,可以帮助确定最佳的井和完井设计,以满足现场的期望。先进的多边井越来越受到许多运营商的欢迎,因此评估不同油田开发方法的价值变得非常重要。这些知识可以帮助作业者解锁新的储层目标,优化油田开发,最终提高采收率和整体油田经济效益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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